BACKGROUND OF THE INVENTION
[0001] Thermal ink jet (TU) print heads produce ink droplets from thermal vaporization of
the ink solvent. In the jetting process, a resistor is heated rapidly to produce a
vapor bubble which subsequently ejects a droplet from the orifice. This process is
extremely efficient and reproducible. Modem TIJ print heads for industrial graphics
applications are capable of generating uniform drops of 4 pL or smaller in volume
at frequencies of 36 kHz or greater. Typical commercial TIJ devices are specifically
designed to vaporize water or solvents that have physical properties close to those
of water (e.g. high boiling point, large heat capacity, low molecular weight).
[0002] Although TIJ printing systems have been available for over 30 years, nearly all of
the commercial inks available for thermal ink jet systems have been water-based, i.e.
they contain more than 50% water. Such aqueous inks have one or more drawbacks such
as long ink dry times or poor adhesion to semi-porous or non-porous substrates.
[0003] There is a desire for inks with attractive performance characteristics such as short
dry times, long decap times and good adhesion when using a TIJ system to print onto
semi-porous and non-porous substrates.
BRIEF SUMMARY OF THE INVENTION
[0004] The invention provides a thermal ink jet ink composition including a volatile organic
solvent, a binder resin, a dye, a humectant, and an additive for extending the decap
time. The thermal ink jet ink composition may provide increased decap time and short
dry times.
[0005] In an embodiment, a thermal ink jet ink composition include a volatile organic solvent,
a binder resin, a dye, a humectant in an amount less than 40% by weight of the thermal
ink jet ink composition, and an additive for extending the decap time. The additive
is present in an amount greater than 0.1% by weight of the thermal ink jet ink composition.
The additive is selected from plasticizers, surfactants, aliphatic hydrocarbons, drying
oils and mixtures thereof. The additive does not phase separate from the ink jet composition
during application of the ink to a substrate in thermal ink jet printing.
[0006] In another embodiment, a method for printing images on a substrate with a thermal
ink jet printer includes directing a stream of droplets of a thermal ink jet ink composition
to a substrate. The ink composition includes a volatile organic solvent, a binder
resin, a dye, a humectant in an amount less than 40% by weight of the thermal ink
jet ink composition, and an additive in an amount greater than 0.1% by weight of the
thermal ink jet ink composition. The additive is selected from plasticizers, surfactants,
aliphatic hydrocarbons, drying oils, and mixtures thereof. The ink droplets are allowed
to dry, thereby printing an image on the substrate. The decap time of the ink is greater
than 2 minutes.
[0007] The thermal ink jet ink composition of the invention has one or more of the following
features: short dry times, long decap times, good adhesion to substrates, safety,
and material compatibility. Decap time is defined as the amount of time a nozzle can
remain dormant and then be fired again without detrimental effect on the droplet velocity,
weight or direction. Fluids with good material compatibility are defined as those
which do not degrade the ability of the TU cartridge to fire for some reasonable length
of time. The thermal ink jet ink composition does not require heat assist (e.g., thermal
driers) when printed on semi-porous and non-porous substrates.
DETAILED DESCRIPTION OF THE INVENTION
[0008] The disclosure provides a thermal ink jet ink composition including volatile organic
solvents, humectants, binder resins, colorants, and an additive.
[0009] In an embodiment, the invention provides a thermal ink jet ink composition including
a volatile organic solvent, a humectant, a binder resin, and a dye. The humectants
are preferably present in an amount not more than 40% by weight of the thermal ink
jet ink composition. The volatile organic solvents may be selected from C
1-C
4 alcohols, C
4-C
8 ethers, C
3-C
6 ketones, C
3-C
6 esters, and mixtures thereof.
[0010] The thermal ink jet ink composition includes an additive to extend the decap time
in a thermal ink jet printer. The additive is present in an amount greater than 0.1%
by weight of the thermal ink jet ink composition. The additive preferably does not
phase separate from the ink jet composition during application of the ink to a substrate
in thermal ink jet printing. The additive may be selected from plasticizers, surfactants,
aliphatic hydrocarbons, drying oils, and mixtures thereof.
[0011] In accordance with an embodiment, the volatile organic solvents may be selected from
C
1-C
4 alcohols, C
4-C
8 ethers, C
3-C
6 ketones, C
3-C
6 esters, and mixtures thereof. Examples of C
1-C
4 alcohols include methanol, ethanol, 1-propanol, and 2-propanol. Examples of C
4-C
8 ethers include diethyl ether, dipropyl ether, dibutyl ether and tetrahydrofuran.
Examples of C
3-C
6 ketones include acetone, methyl ethyl ketone and cyclohexanone. Examples of C
3-C
6 esters include methyl acetate, ethyl acetate and
n-butyl acetate. The organic solvents, particularly alcohols, ketones, and esters,
have an attractive feature that they penetrate semi- and non-porous substrate surfaces
more readily than water based inks, thus reducing dry time and improving adhesion.
One or more volatile organic solvents may be present. In particular embodiments the
thermal ink jet ink composition includes, as the volatile organic solvent(s), methyl
ethyl ketone, a blend of methyl ethyl ketone and methanol, or a blend of methyl ethyl
ketone and ethanol as the primary jetting solvent.
[0012] The one or more volatile organic solvents may be present in any suitable amount,
for example, in an amount 50% or more, about 60% or more, about 70% or more, about
80% or more, or about 90% or more by weight of the thermal ink jet ink composition.
In an embodiment, the one or more volatile organic solvents may be present in an amount
from 50 to about 99%, preferably from about 60 to about 97%, and more preferably from
about 80 to about 95% of the thermal ink jet ink composition. The thermal ink jet
ink composition may optionally include water in a suitable amount, e.g., up to 49%
by weight, up to about 25% by weight, or up to about 10% by weight, up to about 5%
by weight, or up to about 2% by weight of the thermal ink jet ink composition.
[0013] The thermal ink jet ink composition may include any suitable colorant or colorants,
which may be dye or pigment. In an embodiment of the invention, one or more dyes are
employed as the colorant, wherein the one or more dyes are selected from acid dyes,
basic dyes, solvent dyes, reactive dyes, disperse dyes, mordant dyes and any combination
thereof. Examples of solvent dyes include naphthol dyes, azo dyes, metal complex dyes,
anthraquinone dyes, quinoimine dyes, indigoid dyes, benzoquinone dyes, carbonium dyes,
naphthoquinone dyes, naphthalimide dyes, phthalocyanine dyes, and perylene dyes. One
or more colorants may be present.
[0014] For example, the thermal ink jet ink composition can include one or more dyes selected
from C.I. Solvent Yellow 19, C.I. Solvent Yellow 21, C.I. Solvent Yellow 61, C.I.
Solvent Yellow 80, C.I. Solvent Orange 1, C.I. Orange 37, C.I. Orange 40, C.I. Solvent
Orange 54, C.I. Solvent Orange 63, C.I. Solvent Red 8, Solvent Red 49, C.I. Solvent
Red 81, C.I. Solvent Red 82, C.I. Solvent Red 84, C.I. Solvent Red 100, C.I. Acid
Red 92, C. I. Reactive red 31, Orient Pink 312, C.I. Basic Violet 3, C.I. Basic Violet
4, C.I. Solvent Violet 8, C.I. Solvent Violet 21, C.I. Solvent Blue 2, C.I. Solvent
Blue 5, C.I. Solvent Blue 11, C.I. Solvent Blue 25, C.I. Solvent Blue 36, C.I. Solvent
Blue 38, C.I. Solvent Blue 55; C.I. Solvent Blue 70, C.I. Solvent Green 3, C.I. Solvent
Black 3, C.I. Solvent Black 5, C.I. Solvent Black 7, C.I. Solvent Black 22, C.I. Solvent
Black 26, C.I. Solvent Black 27, C.I. Solvent Black 29 (VALIFAST BLACK 3808 or ORASOL
RLI), C.I. Acid Black 123, C.I. Solvent Black 48 (MORFAST BLACK 101), C.I. Oil Blue
613, and any combination thereof, and preferably one or more dyes selected from C.I.
Solvent Black 29 (ORASOL BLACK RLI
™), C.I. Solvent Black 27, C.I. Solvent Black 48, C.I. Solvent Black 3 (Oil Black 860),
C.I. Basic Violet 3, C.I. Solvent Blue 38, C.I. Solvent Blue 70, C.I. Oil Blue 613,
C.I. Solvent Red 49 (ORIENT PINK
™ 312), C.I. Solvent Orange 54 (VALIFAST ORANGE
™ 3210), and any combination thereof.
[0015] Any suitable pigment can be used, for example, one or more pigments selected from
phthalocyanine blue, carbon black, mars black, quinacridone magenta, ivory black,
prussian blue, cobalt blue, ultramarine blue, manganese blue, cerulean blue, indathrone
blue, chromium oxide, iron oxides, viridian, cobalt green, terre verte, nickel azo
yellow, light green oxide, phthalocyanine green-chlorinated copper phthalocyanine,
burnt sienna, perinone orange, irgazin orange, quinacridone magenta, cobalt violet,
ultramarine violet, manganese violet, dioxazine violet, zinc white, titanium white,
flake white, aluminum hydrate, blanc fixe, china clay, lithophone, arylide yellow
G, arylide yellow 10G, barium chromate, chrome yellow, chrome lemon, zinc yellow,
cadmium yellow, aureolin, naples yellow, nickel titanate, arylide yellow GX, isoindolinone
yellow, flavanthrone yellow, yellow ochre, chromophthal yellow 8GN, toluidine red,
quinacridone red, permanent crimson, rose madder, alizarin crimson, vermilion, cadmium
red, permanent red FRG, brominated anthranthrone, naphthol carbamide, perylene red,
quinacridone red, chromophthal red BRN, chromophthal scarlet R, aluminum oxide, bismuth
oxide, cadmium oxide, chromium oxide, cobalt oxide, copper oxide, iridium oxide, lead
oxide, manganese oxide, nickel oxide, rutile, silicon oxide, silver oxide, tin oxide,
titanium oxide, vanadium oxide, zinc oxide, zirconium oxide, and any combination thereof.
[0016] In embodiments, the pigments are selected from azo pigments, phthalocyanine pigments,
quinacridone pigments, dioxazine pigments, isoindolinone pigments, metal oxide pigments,
carbon black, and any combination thereof.
[0017] The pigments may have any suitable particle size, for example, from about 0.005 micron
to about 15 microns, preferably from about 0.005 to about 1 micron, and more preferably
from about 0.01 to about 0.3 micron.
[0018] In any of the embodiments above, the colorant, dye or pigment, may be present in
an amount from about 0.01% to about 10%, preferably from about 0.5% to about 7%, and
more preferably from about 1% to about 5% by weight of the thermal ink jet ink composition.
[0019] In any of the embodiments above, any suitable humectant can be used. Preferably,
humectants have a boiling point greater than 150 °C, greater than 200 °C, or greater
than 250 °C, and/or a relative evaporation rate less than 1.0, less than 0.9, less
than 0.7, less than 0.4, less than 0.1, or less than 0.01. The humectants typically
are solvents having one or more polar functional groups such as hydroxyl, ether, amide,
ester, ketone, and carbonate, for example, two functional groups, which may be the
same or different, such as two hydroxyl groups or one hydroxyl group and one ether
group. In an embodiment, the one or more humectants are selected from polyol, glycol
ether, diacetone alcohol, 2-pyrrolidinone, N-methylpyrrolidinone, ethyl lactate, butyl
lactate, propylene carbonate, 1,3-dimethyl-2-imidazolidindione, and alkyl esters,
and any combination thereof.
[0020] For example, the polyol may be selected from polyethylene glycol, polypropylene glycol,
poly(ethylene-co-propylene glycol), trimethylol propane, ethylene glycol, glycerin,
diethylene glycol, triethylene glycol, tripropylene glycol, tetraethylene glycol,
pentaethylene glycol, 1,2-propylene glycol, 1,3-propanediol, butylene glycol, triethylene
glycol, 1,2,6-hexanetriol, thiodiglycol, hexylene glycol, bis-2-hydroxyethyl ether,
1,4-butanediol, 1,2-butenediol, 1,4-butenediol, 1,3-butenediol, 1,5-pentanediol, 2,4-pentanediol,
2,4-heptanediol, 1,8-octanediol, 1,10-decanediol, 1,12-dodecanediol, 1,4-cyclohexanediol,
1,4-cyclohexanedimethanol, 1,2-bis(hydroxymethyl)cyclohexane, 1,2-bis(hydroxyethyl)-cyclohexane,
3-methyl-1,5-pentanediol, 2,2,4-trimethyl-1,3-pentanediol, neopentyl glycol, pentaerythritol,
sorbitol, mannitol, and any combination thereof, and preferably the polyol is selected
from polyethylene glycol, trimethylol propane, ethylene glycol, propylene glycol,
glycerin, diethylene glycol, tripropylene glycol, and any combination thereof,
[0021] A preferred humectant is glycol ether, for example, a glycol ether selected from
ethylene glycol monomethyl ether, ethylene glycol monoethyl ether, propylene glycol
monomethyl ether, tripropylene glycol monomethyl ether, ethylene glycol monobutyl
ether, diethylene glycol monomethyl ether, diethylene glycol monoethyl ether, propylene
glycol n-propyl ether, propylene glycol t-butyl ether, propylene glycol n-butyl ether,
dipropylene glycol methyl ether, dipropylene glycol n-propyl ether, dipropylene glycol
t-butyl ether, dipropylene glycol n-butyl ether, tripropylene glycol n-propyl ether,
tripropylene glycol t-butyl ether, tripropylene glycol n-butyl ether, ethyl cellosolve,
methyl cellosolve, polyethylene glycol monomethyl ether, polypropylene glycol monomethyl
ether, methoxytriglycol, ethoxytriglycol, butoxytriglycol, 1-butoxyethoxy-2-propanol,
and any combination thereof, and preferably, the glycol ether is selected from ethylene
glycol monomethyl ether, ethylene glycol monoethyl ether, propylene glycol monomethyl
ether, tripropylene glycol monomethyl ether, ethylene glycol monobutyl ether, diethylene
glycol monomethyl ether, diethylene glycol monoethyl ether, and any combination thereof.
In certain embodiments, propylene glycol monomethyl ether is a preferred humectant.
[0022] Humectants may contribute, at least in part, to a feature of the thermal ink jet
ink composition. Thus, humectants may help lengthen decap times. In any of the embodiments,
the one or more humectants may be present in any suitable amount, for example, in
an amount about 40% by weight or less, preferably about 30% by weight or less, about
25% by weight or less, about 20% by weight or less, about 15% by weight or less, or
about 10% by weight or less. In an embodiment, the one or more humectants may be present
in an amount from about 1% to about 30%, preferably from about 2% to about 15%, and
more preferably from about 3% to about 10% of the thermal ink jet ink composition.
[0023] As discussed, the thermal ink jet ink composition includes one or more binder resins.
Any suitable binder resin, soluble or dispersible, can be employed, preferably a solvent
soluble binder resin. In an embodiment, the thermal ink jet ink composition includes
one or more binder resins selected from polyamide resins, polyurethane resins, rosin
ester resins, acrylic resins, polyvinyl butyral resins, polyesters, phenolic resins,
vinyl resins, polystyrene/polyacrylate copolymers, cellulose ethers, cellulose nitrate
resins, polymaleic anhydrides, acetal polymers, polystyrene/polybutadiene copolymers,
polystyrene/polymethacrylate copolymers, sulfonated polyesters, aldehyde resins, polyhydroxystyrene
resins and polyketone resins, and any combination thereof, and preferably one or more
binder resins selected from cellulose nitrate resins, polyamide resins, rosin ester
resins, acrylic resins, polyvinyl butyral resins, vinyl resins and any combination
thereof. An example of a suitable polyamide resin is ARIZONA 201-150™ available from
Arizona Chemical Company, Jacksonville, FL, or COGNIS VERSAMID 756
™, available from Cognis GmbH, Monheim am Rhein, Germany, both of which are alcohol-soluble
polyamide resins. Examples of wood rosin ester resins include UNIREZ
™ 8115, available as a 40% solution in ethanol from Penn Color, Doylestown, PA, which
is a hydrogenated wood rosin ester, and STAYBELITE
™ ESTER 10, available from Chem Central Corporation. Examples of cellulose nitrate
resins are NOBEL
™ DLX 3-5 or NOBEL
™ DHX 5-8, available from Nobel Enterprises. Examples of polyvinyl butyral resins are
PIOLOFORM
™ BN18, available from Wacker Chemie AG, and MOWITAL
™ B20H available from Kuraray America, Inc. Examples of acrylic and styrene/acrylic
resins are Joncryl 611, 682, and 586 (available from BASF, USA) and Paraloid B-66
and B-72 (available from Dow Chemical, USA). Examples of vinyl resins include UCAR
VYHH, VMCH, VMCA, and VAGF (available from Dow Chemical Company, USA) and Vinnol E15/45,
H14/36, E15/45M, and E16/40A (available from Wacker Chemie AG, Germany)
[0024] The polymeric binder resin can be present in any suitable amount, for example, in
an amount from about 0.1 to about 30%, preferably from about 0.2 to about 15%, and
more preferably from about 0.3 to about 8% of the thermal ink jet ink composition.
[0025] In a particular embodiment of the thermal ink jet ink composition, the volatile organic
solvent or solvents may be present in an amount from about 50% to about 95% by weight,
the colorant(s) (dyes, pigments, or a combination thereof), may be present in amount
from about 1% to about 8% by weight, the glycol ether may be present in an amount
from about 3% to 30% by weight, the binder resin may be present in an amount from
about 1% to about 15% by weight, and the additive may be present in an amount from
about 0.1% to 10% by weight of the thermal ink jet ink composition.
[0026] The thermal ink jet ink composition may further include one or more additives to
extend decap time, such as plasticizers, surfactants, aliphatic hydrocarbons, drying
oils, and mixtures thereof. The additive preferably does not phase separate from the
ink jet composition during application of the ink to a substrate in thermal ink jet
printing. Examples of surfactants include siloxanes, silicones, silanols, polyoxyalkyleneamines,
propoxylated (poly(oxypropylene)) diamines, alkyl ether amines, nonyl phenol ethoxylates,
ethoxylated fatty amines, quaternized copolymers of vinylpyrrolidone and dimethyl
aminoethyl methacrylate, fluorinated organic acid diethanolamine salts, alkoxylated
ethylenediamines, polyethylene oxides, polyoxyalkylene polyalkylene polyamines, polyoxyalkylene
polyalkylene polyimines, alkyl phosphate ethoxylate mixtures, polyoxyalkylene derivatives
of propylene glycol, organic esters, EO/PO block copolymers and polyoxyethylated fatty
alcohols. A specific example of a suitable polymeric surfactant, e.g., Silicone Fluid
SF-69, available from Dow Corning Co, Midland, MI, which is a blend of silanols and
cyclic silicones. Additional examples of polymeric surfactants include DISPERSYBYK™
(BYK-Chemie, USA), SOLSPERSE
™ (e.g., SOLSPERSE 13940 which is a polymer/fatty acid condensation polymer) and EFKA
™ (EFKA Chemicals) polymeric dispersants.
[0027] In any of the embodiments, the surfactant additive may be present in an amount from
about 0.1 to about 5.0% by weight, preferably from about 0.5 to about 2% by weight
of the thermal ink jet ink composition.
[0028] Examples of suitable plasticizers include phthalate plasticizers, e.g., alkyl benzyl
phthalates, butyl benzyl phthalate, dioctyl phthalate, diisobutyl phthalate, dicyclohexyl
phthalate, diethyl phthalate, dimethyl isophthalate, dibutyl phthalate, and dimethyl
phthalate, esters such as di-(2-ethylhexy)-adipate, diisobutyl adipate, glycerol tribenzoate,
sucrose benzoate, polypropylene glycol dibenzoate, neopentyl glycol dibenzoate, dibutyl
sebacate, and tri-n-hexyltrimellitate, and sulfonamide plasticizers such as Plasticizer
8, available from Monsanto Co., St. Louis, MO, which is
n-ethyl
o,
p-toluene sulfonamide.
[0029] In embodiments of the invention, the plasticizer additive may be present in an amount
from about 0.2 to about 5.0% by weight, preferably from about 0.3 to about 3.0%, and
more preferably from about 0.5 to about 2.0% of the thermal ink jet ink composition.
[0030] Examples of aliphatic hydrocarbons that may be used as additives include cyclic or
straight chain hydrocarbons, either saturated or unsaturated. The aliphatic hydrocarbon
additive may be present in an amount from about 0.1 to about 5.0% by weight, preferably
from about 0.5 to about 2% by weight of the thermal ink jet ink composition.
[0031] Examples of drying oils that may be used as additives include tung oil, linseed oil,
walnut oil, poppy seed oil and perilla oil. The drying oil additive may be present
in an amount from about 0.1 to about 5.0% by weight, preferably from about 0.5 to
about 2% by weight of the thermal ink jet ink composition.
[0032] The thermal ink jet ink composition may include additional ingredients such as bactericides,
fungicides, algicides, sequestering agents, buffering agents, corrosion inhibitors,
antioxidants, light stabilizers, anti-curl agents, thickeners, and other agents known
in the relevant art. In an embodiment, the ink composition is free or substantially
free of antioxidants. The ink composition preferably includes no more than small amounts
of water. In particular, the ink composition may include less than 2%, 1%, 0.5%, or
0.1% by weight water. The ink composition may be substantially free of water.
[0033] The thermal ink jet ink composition has one or more attractive features such as short
unassisted dry times of printed alphanumeric or graphic images, long decap times,
good adhesion to semi-porous and non-porous substrates, and safety or material compatibility
with one or more components of a thermal ink jet printer. For example, embodiments
of the thermal ink jet ink composition have a dry time of about 10 seconds or less,
such as 5 seconds or less, 4 seconds or less, or 2 seconds or less, under ambient
conditions. On porous substrates, the dry times are shorter than in semi- or non-porous
substrates. For example, embodiments of the thermal ink jet ink composition have a
dry time of about 1 second on porous substrates and less than about 5 seconds, preferably
less than about 2 seconds, and more preferably less than about 1 second on semi-porous
substrates. The thermal ink jet ink composition preferably has a decap time of at
least 30 seconds, more preferably at least 1 minute, 2 minutes, or 5 minutes, and
most preferably at least 10 minutes, when used in a thermal ink jet print head.
[0034] The thermal ink jet ink composition may have any suitable viscosity or surface tension.
In embodiments of the invention, the thermal ink jet ink composition has a viscosity
of less than about 10 cPs, preferably less than about 5 cPs, and more preferably less
than about 3 cPs, for example, a viscosity from about 1 to 4 or from about 1 to about
3 cPs at 25 °C.
[0035] In embodiments of the invention, the thermal ink jet ink composition has a surface
tension from about 18 to about 50 mN/m, from about 20 to about 40 mN/m, or from about
22 to about 30 mN/m at 25 °C.
[0036] The thermal ink jet ink composition may be prepared by any suitable method. For example,
the chosen ingredients may be combined and mixed with adequate stirring and the resulting
fluid filtered to remove any undissolved impurities.
[0037] The present disclosure further provides a method for printing images on a substrate
in a thermal ink jet printer comprising directing a stream of droplets of any of the
embodiments of the thermal ink jet ink composition to a substrate and allowing the
ink droplets to dry, thereby printing images on a substrate. Any suitable substrate
may be printed in accordance with the invention. Examples of suitable substrates include
porous substrates such as uncoated paper, semi-porous substrates such as aqueous coated
paper, clay coated paper, silica coated paper, UV overcoated paper, polymer overcoated
paper, and varnish overcoated paper, and non-porous substrates such as hard plastics,
polymer films, polymer laminates, metals, metal foil laminates, glass, and ceramics.
The paper substrates may be thin sheets of paper, rolls of paper, or cardboard. Plastics,
laminates, metals, glass, and ceramic substrates may be in any suitable form such
as in the form of bottles or containers, plates, rods, cylinders, etc.
[0038] Examples of polymer coating include a coating of polystyrene, polyvinyl alcohol,
polyacryate, polymethacrylate, polystryrene or polyvinyl chloride. Examples of polymer
film substrates include polyvinyl butyrals, polyolefins, polyvinyl chloride, polyethylene
terephthalate, PETG, polybutylene terephthalate (PBT), polyester, polycarbonate, acrylonitrile-butadiene-styrene
(ABS) copolymer, polyvinyl fluoride polymer, polyamides, polyimides, and cellulose.
Plastics may be treated plastics (e.g. chemical etch, corona discharge, flame plasma,
etc.) or untreated plastics. Examples of metals include aluminum, copper, stainless
steel, and metal alloys. Examples of ceramics include oxides, nitrides, and carbides
of metals.
[0039] The following examples further illustrate the invention but, of course, should not
be construed as in any way limiting its scope. The following Examples illustrate the
preparation of an ink composition suitable for use in a thermal ink printer. In each
case, the ingredients were combined and mixed until all solid components were dissolved.
The resulting mixture was filtered to remove any particulates and the ink composition
was recovered. The ink composition was printed using a representative thermal ink
jet printer on a variety of non-porous substrates including glass, aluminum, polyethylene,
polypropylene, and polyvinyl chloride. The decap time was measured by printing an
image consisting of 100 vertical bars that were 1 dot wide for the full width of the
nozzle array, allowing the print head to remain idle for the specified period of time,
then reprinting the same image without wiping or other maintenance. The decap time
is the maximum amount of time the print head can remain uncapped and fully recover
within the first 20% of the vertical lines. The drying time was measured by printing
representative alphanumeric text, and gently sliding a finger across the text every
second (or interval of seconds) and observing when the image no longer smears.
EXAMPLE 1
[0040] This example illustrates embodiments of the thermal ink jet ink composition of the
invention. The materials employed in preparing the thermal ink jet ink composition,
their amounts, and the formulation numbers are set forth in Table 1 below. For the
5542 and 5543 samples, N-Ethyl O/P-Toluene Sulfonamide was used as an additive to
increase decap time. Comparative Example A did not include N-Ethyl O/P-Toluene Sulfonamide.
Table 1
| |
Comparative Example A |
5542 |
5543 |
| ethanol |
67.45 |
66.45 |
65.45 |
| glycol ether PM |
15 |
15 |
15 |
| water |
5 |
5 |
5 |
| Arizona 201-150 (20% in ethanol) |
10 |
10 |
10 |
| Silicone SF69 |
0.05 |
0.05 |
0.05 |
| Solvent Red 49 |
1.5 |
1.5 |
1.5 |
| Solvent Orange 54 |
1.0 |
1.0 |
1.0 |
| N-Ethyl O/P-Toluene Sulfonamide |
|
1 |
2 |
| Decap Time (seconds) |
8" |
15" |
30" |
| Dry Time (seconds) - Semi-Porous Surface (Clay coated paper) |
1" |
1" |
1" |
| Dry Time (seconds) Aqueous coated paper) |
≤5" |
≤5" |
≤5" |
[0041] The printed images were found to have a drying time of 1 second or less on semi-porous
and 5 seconds or less on aqueous coated surfaces. The images had excellent rub resistance
and adhesion properties. Sample 5543 had a decap time of at least 30 seconds, compared
to 8 seconds for Comparative Example A.
EXAMPLE 2
[0042] This example illustrates embodiments of the thermal ink jet ink composition of the
invention. The materials employed in preparing the thermal ink jet ink composition,
their amounts, and the formulation numbers are set forth in Table 2 below. For the
5572 and 5573 samples, a silicone surfactant was used as an additive to increase decap
time. Comparative Example B did not include the silicone surfactant.
Table 2
| |
Comparative Example B |
5572 |
5573 |
| ethanol |
90.25 |
90.05 |
89.75 |
| glycol ether PM |
3.13 |
3.13 |
3.13 |
| Arizona 201-150 (20% in ethanol) |
3.73 |
3.73 |
3.73 |
| Plasticizer 8 |
0.50 |
0.50 |
0.50 |
| Solvent Red 49 |
1.39 |
1.39 |
1.39 |
| Solvent Orange 54 |
1.00 |
1.00 |
1.00 |
| Silicone SF69 |
|
0.20 |
0.50 |
| Decap Time (seconds) |
8" |
30-60" |
120" |
| Dry Time (seconds) - Semi-Porous Surface (Clay coated paper) |
1" |
1" |
1" |
| Dry Time (seconds) - Non-Porous Surface (Aqueous and Varnish coated paper) |
2.5" |
2.5" |
2.5" |
[0043] The printed images were found to have a drying time of 1 second or less on semi-porous
surfaces and a drying time of 2.5 seconds on non-porous surfaces. The images had excellent
rub resistance and adhesion properties. The images had acceptable print quality. Sample
5573 had a decap time of at least 2 minutes, compared to 8 seconds for Comparative
Example B.
EXAMPLE 3
[0044] The materials employed in preparing the thermal ink jet ink composition, their amounts,
and the formulation numbers are set forth in Table 3 below. For the 5605 sample, Magiesol
500/600 was used as an additive to increase decap time. Comparative Example C did
not include Magiesol 500/600.
Table 3
| |
Comparative Example C |
5605 |
| methanol |
47.50 |
43.18 |
| methyl ethyl ketone |
47.50 |
43.18 |
| Joncryl 682 |
3.47 |
3.16 |
| Silicone SF69 |
0.03 |
0.03 |
| Basic Violet 3 |
1.50 |
1.36 |
| Magiesol 500/600 |
|
9.09 |
| Decap Time (seconds) |
15" |
300-600" |
| Dry Time (seconds) - Semi-Porous Surface (Clay coated paper) |
1" |
1" |
| Dry Time (seconds) - Non-Porous Surface (Aqueous and Varnish coated paper) |
1" |
>5" |
[0045] The printed images were found to have a drying time of 1 second or less on semi-porous
surfaces. The images had excellent rub resistance and adhesion properties. The images
had acceptable print quality. Sample 5605 had a decap time of 5 to 10 minutes, compared
to 15 seconds for Comparative Example C.
EXAMPLE 4
[0046] This example illustrates embodiments of the thermal ink jet ink composition of the
invention. The materials employed in preparing the thermal ink jet ink composition,
their amounts, and the formulation numbers are set forth in Table 1 below. For the
5600 sample, tung oil was used as an additive to increase decap time. Comparative
Example D did not include tung oil.
Table 4
| |
Comparative Example D |
5600 |
| MEK |
46.2 |
43.7 |
| MeOH |
46.2 |
43.7 |
| glycol ether PM |
3.5 |
3.5 |
| Joncryl 682 |
2 |
2 |
| Silicone SF69 |
0.05 |
0.05 |
| Basic Violet 3 |
2 |
2 |
| Tung oil |
|
5 |
| Decap Time (seconds) |
30-60" |
> 900" |
| Dry Time (seconds) - Semi-Porous Surface (Clay coated paper) |
1" |
1" |
| Dry Time (seconds) - Non-Porous Surface (Aqueous and Varnish coated paper) |
1" |
> 5" |
[0047] The printed images were found to have a drying time of 1 second or less on semi-porous
surfaces. The images had excellent rub resistance and adhesion properties. Sample
NA had a decap time of at least 15 minutes, compared to 30-60 seconds for Comparative
Example D.
[0048] From the Examples above, it can be seen the various additives may be used in the
thermal ink jet ink compositions disclosed herein to extend the decap times in a thermal
ink jet printer.
[0049] The use of the terms "a" and "an" and "the" and similar referents in the context
of describing the invention (especially in the context of the following claims) are
to be construed to cover both the singular and the plural, unless otherwise indicated
herein or clearly contradicted by context. The terms "comprising," "having," "including,"
and "containing" are to be construed as open-ended terms (i.e., meaning "including,
but not limited to,") unless otherwise noted. Recitation of ranges of values herein
are merely intended to serve as a shorthand method of referring individually to each
separate value falling within the range, unless otherwise indicated herein, and each
separate value is incorporated into the specification as if it were individually recited
herein. All methods described herein may be performed in any suitable order unless
otherwise indicated herein or otherwise clearly contradicted by context. The use of
any and all examples, or exemplary language (e.g., "such as") provided herein, is
intended merely to better illuminate the invention and does not pose a limitation
on the scope of the invention unless otherwise claimed. No language in the specification
should be construed as indicating any non-claimed element as essential to the practice
of the invention.
[0050] Preferred embodiments of this invention are described herein, including the best
mode known to the inventors for carrying out the invention. Variations of those preferred
embodiments may become apparent to those of ordinary skill in the art upon reading
the foregoing description. The inventors expect skilled artisans to employ such variations
as appropriate, and the inventors intend for the invention to be practiced otherwise
than as specifically described herein. Accordingly, this invention includes all modifications
and equivalents of the subject matter recited in the claims appended hereto as permitted
by applicable law. Moreover, any combination of the above-described elements in all
possible variations thereof is encompassed by the invention unless otherwise indicated
herein or otherwise clearly contradicted by context.
1. A thermal ink jet ink composition comprising:
a volatile organic solvent selected from the group consisting of methanol, ethanol,
1-propanol, isopropanol, acetone, methyl ethyl ketone, methyl propyl ketone, methyl
i-propyl ketone, 3-pentanone, cyclohexanone, methyl acetate, ethyl acetate and mixtures
thereof;
a binder resin, wherein the binder is present in an amount of from 0.3% to 8% by weight
of the ink composition;
a dye;
a humectant in an amount less than 40% by weight of the thermal ink jet ink composition,
and
an additive for extending the decap time of the thermal ink jet ink composition, wherein
the additive is present in an amount greater than 0.1 % by weight of the thermal ink
jet ink composition, wherein the additive is selected from the group consisting of
plasticizers, surfactants, aliphatic hydrocarbons, drying oils and mixtures thereof,
wherein the additive does not phase separate from the ink jet composition during application
of the ink to a substrate in thermal ink jet printing,
wherein the thermal ink jet composition a) is substantially free of water, or b) includes
water in an amount of up to 10% by weight of the ink composition.
2. The thermal ink jet ink composition of claim 1, wherein the ink composition has a
decap time of greater than 30 seconds in a thermal ink jet printer and optionally
a decap time of greater than 2 minutes in a thermal ink jet printer.
3. The thermal ink jet ink composition of claim 1, wherein the additive comprises;
a plasticizer selected from the group consisting of n-alkyl sulfonamides, dialkyl
phthalates, dialkyl adipates, benzoate esters, dialkyl sebacates, trimellitates, and
mixtures thereof and/or
an surfactant selected from the group consisting of silicones, silanols, modified
siloxanes, organic esters, EO/PO block copolymers, and mixtures thereof.; and/or
an aliphatic hydrocarbon selected from the group consisting of cyclic hydrocarbons,
straight chain hydrocarbons, and mixtures thereof; and/or
a drying oil selected from the group consisting of tung oil, linseed oil, walnut oil,
poppy seed oil, perilla oil, and mixtures thereof; and/or
a petroleum distillate having a boiling point of about 200 °C to about 400 °C
4. The thermal ink jet ink composition of claim 1 , wherein the binder resin is selected
from the group consisting of polyamide resins, rosin ester resins, acrylic resins,
polyketone resins, cellulose nitrate resins, polyvinyl butyral resins, vinyl resins
and mixtures thereof.
5. The thermal ink jet ink composition of claim 1, wherein the dye is selected from the
group consisting of acid dyes, basic dyes, solvent dyes, direct dyes, disperse dyes,
mordant dyes, reactive dyes, and mixtures thereof.
6. The thermal ink jet ink composition of claim 7, wherein the dye is selected from the
group consisting of C.I. Solvent Black 29, C.I. Solvent Black 26, C.I. Solvent Black
27, C.I. Solvent Black 48, C.I. Solvent Black 3, C.I. Basic Violet 3, C.I. C.I. Solvent
Red 49, C.I. Solvent Orange 54, Orient Oil Pink 312, and mixtures thereof.
7. The thermal ink jet ink composition of claim 1, wherein the volatile organic solvents
is selected from methanol, ethanol, methyl ethyl ketone, or a mixture thereof.
8. The thermal ink jet ink composition of claim 1, which further includes a humectant
selected from the group consisting of polyol, glycol ether, diacetone alcohol, 2-
pyrrolidinone, N-methylpyrrolidone, ethyl lactate, 1, 3-dimethyl-2-imidazolidindione,
propylene carbonate, alkyl esters, and mixtures thereof.
9. The thermal ink jet ink composition of claim 1, wherein the ink composition has a
decap time of greater than 5 minutes in a thermal ink jet printer.
10. The thermal ink jet ink composition of any previous claim, wherein the ink composition
has a dry time of less than 5 seconds in a thermal ink jet printer.
11. A thermal ink jet cartridge including a thermal ink jet ink composition according
to any previous claim.
12. A method for printing images on a substrate with a thermal ink jet printer comprising:
directing a stream of droplets of a thermal ink jet ink composition to a substrate,
wherein the thermal ink jet ink composition is as defined according to any one of
claims 1 to 10; and
allowing the ink droplets to dry, thereby printing an image on the substrate, wherein
the decap time of the ink is greater than 2 minutes.
13. The method of claim 12, wherein the ink composition has a decap time of greater than
5 minutes and/or
wherein the ink composition has a dry time of less than 5 seconds in a thermal ink
jet printer.
1. Wärmetintenstrahl-Tintenzusammensetzung umfassend:
ein flüchtiges organisches Lösungsmittel ausgewählt aus der Gruppe bestehend aus Methanol,
Ethanol, 1-Propanol, Isopropanol, Aceton, Methylethylketon, Methylpropylketon, Methyl-i-propylketon,
3-Pentanon, Cyclonhexanon, Methylacetat und Mischung davon;
ein Bindemittelharz, wobei das Bindemittel in einer Menge von 0,3 bis 8 Gew.-%, auf
die Tintenzusammensetzung bezogen, vorliegt;
einen Farbstoff;
ein Feuchthaltemittel in einer Menge von weniger als 40 Gew.-%, auf die Wärmetintenstrahl-Tintenzusammensetzung
bezogen, und
ein Zusatzmittel zum Verlängern der Latenzzeit der Wärmetintenstrahl-Tintenzusammensetzung,
wobei das Zusatzmittel in einer Menge von mehr als 0,1 Gew.-%, auf die Wärmetintenstrahl-Tintenzusammensetzung
bezogen, vorliegt, wobei das Zusatzmittel aus der Gruppe ausgewählt wird bestehend
aus Weichmachern, Tensiden, aliphatischen Kohlenwasserstoffen, trocknenden Ölen und
Mischungen davon, wobei das Zusatzmittel während des Aufbringen der Tinte auf ein
Substrat beim Wärmetintenstrahldrucken sich von der Tintenstrahlzusammensetzung nicht
phasentrennt,
wobei die Wärmetintenstrahlzusammensetzung a) im Wesentlichen frei von Wasser ist
oder b) Wasser in einer Menge von bis zu 10 Gew.-%, auf die Tintenzusammensetzung
bezogen, umfasst.
2. Wärmetintenstrahl-Tintenzusammensetzung nach Anspruch 1, wobei die Tintenzusammensetzung
eine Latenzzeit von mehr als 30 Sekunden in einem Wärmetintenstrahldrucker und wahlweise
eine Latenzzeit von mehr als 2 Minuten in einem Wärmetintenstrahldrucker aufweist.
3. Wärmetintenstrahl-Tintenzusammensetzung nach Anspruch 1, wobei das Zusatzmittel Folgendes
umfasst:
einen Weichmacher ausgewählt aus der Gruppe bestehend aus n-Alkylsulfonamiden, Dialkylphthalaten,
Dialkyladipaten, Benzoatestern, Dialkylsebacaten, Trimellitaten und Mischungen davon;
und/oder
ein Tensid ausgewählt aus der Gruppe bestehend aus Siliconen, Silanolen, modifizierten
Siloxanen, organischen Estern, EO/PO-Blockcopolymeren und Mischungen davon und/oder
einen aliphatischen Kohlenwasserstoff ausgewählt aus der Gruppe bestehend aus cyclischen
Kohlenwasserstoffen, geradkettigen Kohlenwasserstoffen und Mischungen davon; und/oder
ein trocknendes Öl ausgewählt aus der Gruppe bestehend aus Tungöl, Leinsamenöl, Walnussöl,
Mohnsamenöl, Perillaöl und Mischungen davon; und/oder
ein Erdöldestillat, das einen Siedepunkt von etwa 200 °C bis etwa 400 °C aufweist.
4. Wärmetintenstrahl-Tintenzusammensetzung nach Anspruch 1, wobei das Bindemittelharz
aus der Gruppe ausgewählt ist bestehend aus Polyamidharzen, Kolophoniumesterharzen,
Acrylharzen, Polyketonharzen, Celullosenitratharzen, Polyvinylbutyralharzen, Vinylharzen
und Mischungen davon.
5. Wärmetintenstrahl-Tintenzusammensetzung nach Anspruch 1, wobei der Farbstoff aus der
Gruppe ausgewählt wird bestehend aus sauren Farbstoffen, basischen Farbstoffen, Lösungsmittelfarbstoffen,
Direktfarbstoffen, Dispersfarbstoffen, Beizmittelfarbstoffen, reaktiven Farbstoffen
und Mischungen davon.
6. Wärmetintenstrahl-Tintenzusammensetzung nach Anspruch 7, wobei der Farbstoff aus der
Gruppe ausgewählt wird bestehend aus C.I. Solvent Black 29, C.I. Solvent Black 26,
C.I. Solvent Black 27, C.I. Solvent Black 48, C.I. Solvent Black 3, C.I. Basic Violet
3, C.I. C.I. Solvent Red 49, C.I. Solvent Orange 54, Orient Oil Pink 312 und Mischungen
davon.
7. Wärmetintenstrahl-Tintenzusammensetzung nach Anspruch 1, wobei die flüchtigen organischen
Lösungsmittel unter Methanol, Ethanol, Methylmethylketon oder einer Mischung davon
ausgewählt werden.
8. Wärmetintenstrahl-Tintenzusammensetzung nach Anspruch 1, die ferner ein Feuchthaltemittel
umfasst ausgewählt aus der Gruppe bestehend aus Polyol, Glycolether, Diacetonalkohol,
2-Pyrrolidinon, N-Methylpyrrolidon, Ethyllactat, 1,3-Dimethyl-2-imidazolidindion,
Propylencarbonat, Alkylestern und Mischungen davon.
9. Wärmetintenstrahl-Tintenzusammensetzung nach Anspruch 1, wobei die Tintenzusammensetzung
eine Latenzzeit von mehr als 5 Minuten in einem Wärmetintenstrahldrucker aufweist.
10. Wärmetintenstrahl-Tintenzusammensetzung nach einem der vorhergehenden Ansprüche, wobei
die Tintenzusammensetzung eine Trocknungszeit von weniger als 5 Sekunden in einem
Wärmetintenstrahldrucker aufweist.
11. Wärmetintenstrahlpatrone umfassend eine Wärmetintenstrahl-Tintenzusammensetzung nach
irgendeinem vorhergehenden Anspruch.
12. Verfahren zum Drucken von Bildern auf ein Substrat mit einem Wärmetintenstrahldrucker
umfassend:
das Richten eines Stroms von Tröpfchen einer Wärmetintenstrahl-Tintenzusammensetzung
auf ein Substrat, wobei die Wärmetintenstrahl-Tintenzusammensetzung die Definition
nach irgendeinem der Ansprüche 1 bis 10 aufweist; und
das Gestatten den Tintentröpfchen zu trocknen, wodurch ein Bild auf das Substrat gedruckt
wird, wobei die Latenzzeit der Tinte mehr als 2 Minuten beträgt.
13. Verfahren nach Anspruch 12, wobei die Tintenzusammensetzung eine Latenzzeit von mehr
als 5 Minuten aufweist und/oder
wobei die Tintenzusammensetzung eine Trocknungszeit von weniger als 5 Sekunden in
einem Wärmetintenstrahldrucker aufweist.
1. Composition d'encre pour jet d'encre thermique comprenant:
un solvant organique volatil sélectionné dans le groupe constitué du méthanol, de
l'éthanol, du 1-propanol, de l'isopropanol, de l'acétone, de la méthyl éthyl cétone,
méthyl propyl cétone, méthyl i-propyl cétone, 3-pentanone, cyclohexanone, de l'acétate de méthyle, acétate d'éthyle
et de leurs mélanges;
une résine liante, dans laquelle le liant est présent en une quantité de 0,3 % à 8
% en poids de la composition d'encre;
un colorant;
un agent humectant en une quantité inférieure à 40 % en poids de la composition d'encre
pour jet d'encre thermique, et
un additif pour l'extension du temps de latence de la composition d'encre pour jet
d'encre thermique, dans laquelle l'additif est présent en une quantité supérieure
à 0,1 % en poids de la composition d'encre pour jet d'encre thermique, dans laquelle
l'additif est sélectionné dans le groupe constitué des agents plastifiants, tensioactifs,
hydrocarbures aliphatiques, huiles desséchantes et de leurs mélanges, dans laquelle
l'additif ne produit pas de séparation de phases de la composition pour jet d'encre
durant l'application de l'encre à un substrat dans une impression par jet d'encre
thermique,
dans laquelle la composition d'encre pour jet d'encre thermique a) est substantiellement
exempte d'eau, ou b) inclut de l'eau en une quantité allant jusqu'à 10 % en poids
de la composition d'encre.
2. Composition d'encre pour jet d'encre thermique selon la revendication 1, dans laquelle
la composition d'encre a un temps de latence supérieur à 30 secondes dans une imprimante
à jet d'encre thermique et éventuellement un temps de latence supérieur à 2 minutes
dans une imprimante à jet d'encre thermique.
3. Composition d'encre pour jet d'encre thermique selon la revendication 1, dans laquelle
l'additif comprend:
un agent plastifiant sélectionné dans le groupe constitué des n-alkyl sulfonamides, phtalates de dialkyle, adipates de dialkyle, esters de benzoate,
sébacates de dialkyle, trimellitates, et de leurs mélanges et/ou
un tensioactif sélectionné dans le groupe constitué des silicones, silanols, siloxanes
modifiés, esters organiques, copolymères séquencés d'EO/PO, et de leurs mélanges;
et/ou
un hydrocarbure aliphatique sélectionné dans le groupe constitué des hydrocarbures
cycliques, des hydrocarbures à chaîne linéaire, et de leurs mélanges; et/ou
une huile desséchante sélectionnée dans le groupe constitué de l'huile d'Aleurites cordata, huile de lin, huile de noix, huile de pavot bleu, huile de Perilla frutescens, et de leurs mélanges; et/ou
un distillat de pétrole ayant un point d'ébullition d'environ 200°C à environ 400°C.
4. Composition d'encre pour jet d'encre thermique selon la revendication 1, dans laquelle
la résine liante est sélectionnée dans le groupe constitué des résines de polyamide,
résines d'ester de colophane, résines acryliques, résines de polycétone, résines de
nitrate de cellulose, résines de polyvinyl butyral, résines de vinyle et de leurs
mélanges.
5. Composition d'encre pour jet d'encre thermique selon la revendication 1, dans laquelle
le colorant est sélectionné dans le groupe constitué des colorants acides, colorants
alcalins, colorants à base de solvant, colorants directs, colorants plastosolubles,
colorants mordants, colorants réactifs, et de leurs mélanges.
6. Composition d'encre pour jet d'encre thermique selon la revendication 7, dans laquelle
le colorant est sélectionné dans le groupe constitué du noir pour solvant du C.I.
29, noir pour solvant du C.I. 26, noir pour solvant du C.I. 27, noir pour solvant
du C.I. 48, noir pour solvant du C.I. 3, violet basique C.I. 3, rouge pour solvant
du C.I. 49, de l'orange pour solvant du C.I. 54, du rose orient pour huile 312, et
de leurs mélanges.
7. Composition d'encre pour jet d'encre thermique selon la revendication 1, dans laquelle
le solvant organique volatil est sélectionné parmi le méthanol, l'éthanol, la méthyl
éthyl cétone, ou un mélange de ceux-ci.
8. Composition d'encre pour jet d'encre thermique selon la revendication 1, qui inclut
en outre un agent humectant sélectionné dans le groupe constitué du polyol, de l'éther
de glycol, alcool de diacétone, de la 2-pyrrolidinone, N-méthylpyrrolidone, du lactate d'éthyle, de la 1,3-diméthyl-2-imidazolidindione, du
carbonate de propylène, des esters d'alkyle, et de leurs mélanges.
9. Composition d'encre pour jet d'encre thermique selon la revendication 1, dans laquelle
la composition d'encre a un temps de latence supérieur à 5 minutes dans une imprimante
à jet d'encre thermique.
10. Composition d'encre pour jet d'encre thermique selon l'une quelconque des revendications
précédentes, dans laquelle la composition d'encre présente un temps de séchage inférieur
à 5 secondes dans une imprimante à jet d'encre thermique.
11. Cartouche pour jet d'encre thermique incluant une composition d'encre pour jet d'encre
thermique selon l'une quelconque des revendications précédentes.
12. Procédé d'impression d'images sur un substrat avec une imprimante à jet d'encre thermique
comprenant:
l'orientation d'un flux de gouttelettes d'une composition d'encre pour jet d'encre
thermique vers un substrat, dans lequel la composition d'encre pour jet d'encre thermique
est telle que définie selon l'une quelconque des revendications 1 à 10; et
le fait de laisser les gouttelettes d'encre sécher, imprimant de là une image sur
le substrat, dans lequel le temps de latence de l'encre est supérieur à 2 minutes.
13. Procédé selon la revendication 12, dans lequel la composition d'encre a un temps de
latence supérieur à 5 minutes et/ou
dans lequel la composition d'encre a un temps de séchage inférieur à 5 secondes dans
une imprimante à jet d'encre thermique.